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Magnetoacoustic Waves and the Kelvin–Helmholtz Instability in a Steady Asymmetric Slab

机译:稳态非对称平板中的磁声波和开尔文-亥姆霍兹不稳定性

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摘要

Recent observations have shown that bulk flow motions in structured solar plasmas, most evidently in coronal mass ejections (CMEs), may lead to the formation of Kelvin–Helmholtz instabilities (KHIs). Analytical models are thus essential in understanding both how the flows affect the propagation of magnetohydrodynamic (MHD) waves, and what the critical flow speed is for the formation of the KHI. We investigate both these aspects in a novel way: in a steady magnetic slab embedded in an asymmetric environment. The exterior of the slab is defined as having different equilibrium values of the background density, pressure, and temperature on either side. A steady flow and constant magnetic field are present in the slab interior. Approximate solutions to the dispersion relation are obtained analytically and classified with respect to mode and speed. General solutions and the KHI thresholds are obtained numerically. It is shown that, generally, both the KHI critical value and the cut-off speeds for magnetoacoustic waves are lowered by the external asymmetry.
机译:最近的观察表明,结构化太阳等离子体中的整体流动运动,最明显的是在日冕物质抛射(CME)中,可能导致开尔文-亥姆霍兹不稳定性(KHIs)的形成。因此,分析模型对于理解流量如何影响磁流体动力学(MHD)波的传播以及形成KHI的关键流速是至关重要的。我们以新颖的方式研究了这两个方面:在不对称环境中嵌入的稳定磁性平板中。板的外部被定义为在两侧具有不同的背景密度,压力和温度平衡值。平板内部存在稳定的流动和恒定的磁场。通过解析获得色散关系的近似解,并根据模式和速度对其进行分类。通用解和KHI阈值通过数值获得。结果表明,通常,由于外部不对称性,KHI临界值和磁声波的截止速度都会降低。

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